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Wang, L.

Publications and source records attributed to Wang, L..

4 recordsLinked to original sources

Attenuated Salmonella-Mediated Delivery of GSDMD Potentiates PD-1 Blockade Therapy against Melanoma

Immunotherapy has emerged as a core therapeutic strategy for melanoma. Programmed death protein 1 (PD-1) is a critical immune checkpoint molecule that restrains host anti-tumor immunity, and therapeutic agents blocking the PD-1 signaling pathway have been widely deployed in clinical practice. Nevertheless, single-agent PD-1 blockade fails to elicit robust clinical responses in the majority of patients. Therefore, there is an urgent unmet need to develop combinatorial regimens capable of augmenting the anti-tumor efficacy of PD-1 inhibition. Gasdermin D (GSDMD), a pore-forming effector protein that orchestrates pyroptosis, exerts inherent anti-tumor activities upon overexpression. However, whether GSDMD can synergize with PD-1 blockade to enhance therapeutic outcomes against melanoma remains poorly defined. To address this question, we established an attenuated Salmonella engineered strain for targeted delivery of GSDMD, and further investigated the anti-melanoma therapeutic efficacy of combining this engineered bacterium with anti-PD-1 antibody via immunofluorescence staining, flow cytometry and other analytical approaches. Our in vivo results demonstrated that combinatorial treatment markedly suppressed melanoma progression in tumor-bearing mice relative to monotherapy with either GSDMD-expressing bacteria or anti-PD-1 antibody alone. Mechanistically, co-treatment upregulated intratumoral expression of GSDMD and the pro-apoptotic protein BAX, while simultaneously downregulating PD-1 expression. In addition, the GSDMD/anti-PD-1 combination significantly elevated the proportions of CD4 and CD8 T lymphocytes in both peripheral blood and splenic tissues, and facilitated robust tumor infiltration by these two T cell subsets. Compared with phosphate-buffered saline (PBS) and scramble control groups, combinatorial therapy promoted tumor infiltration of M1-type tumor-associated macrophages (TAMs) and repolarized TAMs away from the immunosuppressive M2 phenotype. Consistently, serum levels of the pro-inflammatory cytokines TNF- and IFN-{gamma} were markedly elevated following combined intervention. Collectively, this study verifies that attenuated Salmonella carrying GSDMD synergizes with anti-PD-1 antibody to elicit potent anti-tumor effects in melanoma-bearing mice by amplifying systemic and intratumoral anti-tumor immune responses, which provides a preclinical rationale for novel combinatorial therapeutic strategies against melanoma.

cancer biology

Cardiomyocyte-specific loss of Smyd5 leads to a robust activation of inflammatory signaling and heart failure in mice.

Background: Cardiomyocytes respond to stress by undergoing hypertrophic growth driven by dynamic changes in gene expression. Epigenetic mechanisms, including histone methylation, play critical roles in regulating these transcriptional programs, yet the enzymes controlling these modifications during cardiac disease remain largely unknown. The SMYD family of histone methyltransferases regulates gene expression in multiple biological contexts, but the function of SMYD5 in the mammalian heart has never been investigated. Methods: SMYD5 expression was assessed in human heart failure samples and in a mouse model of cardiac hypertrophy. To define its functional role in vivo, we generated inducible cardiomyocyte-specific Smyd5 knockout mice and characterized their cardiac phenotype using molecular, histological, and functional analyses. Chromatin immunoprecipitation-quantitative PCR (ChIP-qPCR) was performed to examine histone H4 lysine 20 trimethylation (H4K20me3) at the Il-6 promoter. Results: SMYD5 expression was altered in diseased human and mouse hearts. Under basal conditions, cardiomyocyte-specific deletion of Smyd5 resulted in baseline structural cardiac remodeling and transcriptional signatures characteristic of pathological stress. Smyd5-deficient hearts exhibited marked inflammatory activation resembling a cytokine storm with immune cell infiltration and heart failure. Notably, Smyd5 knockout mice displayed a 100-fold increase in Il-6 expression, accompanied by a global reduction in H4K20me3. ChIP-qPCR analysis of the Il-6 promoter, together with loss- and gain-of-function analysis of SMYD5, supports a direct epigenetic role of SMYD5 in regulating Il-6 expression through H4K20me3 in cardiomyocytes. Conclusions: SMYD5 is a previously unrecognized epigenetic regulator of cardiac homeostasis that restrains inflammatory signaling in cardiomyocytes under normal conditions. Loss of Smyd5 disrupts H4K20me3, leading to derepression of Il-6 in cardiomyocytes and a robust inflammatory response characterized by immune cell recruitment and fibrosis, accompanied by rapid progression of cardiac remodeling and heart failure. These findings identify SMYD5 as a critical regulator of intrinsic cardiomyocyte inflammatory signaling and reveal a novel chromatin-based mechanism contributing to inflammatory cardiomyopathies.

molecular biology

Nuclear Myosin VI stabilises Ku-associated DNA ends during non-homologous end joining

DNA double-strand breaks (DSBs) require rapid signalling and physical stabilisation of broken DNA ends to preserve genome integrity. Here, we identify myosin VI (MVI) as an ATM-regulated component of the DSB response. DNA damage induces rapid nuclear accumulation and nanoscale reorganisation of MVI across multiple cell models, in an ATM-dependent manner. Pharmacological or genetic perturbation of MVI attenuates {gamma}H2AX signalling and disrupts Ku80 organisation, while DNA damage persists. This leads to increased sensitivity to cisplatin and bleomycin. Super-resolution imaging reveals spatial association of MVI with Ku80-containing repair structures, implicating MVI in non-homologous end joining (NHEJ). In a minimal reconstituted system, MVI and actin enhance the proximity of Ku70/80-bound DNA ends. Together, our findings identify MVI as a regulator of DSB repair that links ATM signalling to Ku-associated DNA-end stabilisation and suggest that targeting MVI may sensitise tumour cells to genotoxic therapy.

cancer biology

POU2AF2/OCA-T1 coactivates POU2F2 and defines a lineage-specific dependency in diffuse large B-cell lymphoma

Lineage-restricted transcriptional programs establish cell identity and can create selective dependencies in cancer. Here, we identify POU2AF2, encoding the transcriptional co-activator OCA-T1, as a critical lineage-specific dependency in a subset of diffuse large B-cell lymphoma (DLBCL). Pan-cancer dependency analyses and patient cohorts reveal elevated POU2AF2 expression in genetically aggressive DLBCL, where its depletion markedly suppresses tumor growth in vitro and in vivo. Mechanistically, POU2AF2 cooperates with the B-cell lineage-defining transcription factor POU2F2 (OCT2) to activate lymphocyte activation gene programs through direct chromatin engagement, thereby sustaining malignant transcriptional networks. We further identified a key epigenetic regulatory axis composed of the lineage-specific transcription factor TCF3 and the histone methyltransferase SET1A-COMPASS that drives POU2AF2 expression downstream of B-cell receptor signaling. Single-cell transcriptomic analysis reveals that POU2AF2 marks and sustains an innate-like B1 B-cell population in vivo, a candidate cell of origin for lymphoma. Together, these findings define a lineage-restricted POU2AF2/POU2F2 transcriptional module, controlled by a TCF3/SET1A epigenetic network, that sustains both innate-like B-cell identity and malignant fitness in DLBCL. Our study uncovers a previously unrecognized lineage-specific transcriptional dependency and highlights POU2AF2 and its associated regulatory circuitry as potential therapeutic targets in aggressive B-cell malignancies.

cell biology